光子晶体的逆向设计

Nanophotonics (Berlin, Germany) Pub Date : 2024-02-05 eCollection Date: 2024-04-01 DOI:10.1515/nanoph-2023-0750
Ruhuan Deng, Wenzhe Liu, Lei Shi
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引用次数: 0

摘要

光子晶体是一种周期性介电结构,具有丰富的物理特性。由于它们与光相互作用的独特方式,它们为精确调制电磁场提供了新的自由度,在学术界和工业界都得到了广泛的研究。与此同时,在计算机科学进步的推动下,反向设计策略正逐渐被用于高效生产各个领域的按需设备。因此,光子晶体与逆向设计相结合的跨学科领域应运而生并蓬勃发展。在此,我们将回顾逆向设计在光子晶体中应用的最新进展。我们首先简要介绍了背景,然后主要讨论了光子晶体各种物理性质的优化,从特征特性到基于响应的特性,最后展望了未来的发展方向。在整篇论文中,我们强调了一些有见地的著作及其设计算法,旨在为这一新兴领域的读者提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inverse design in photonic crystals.

Photonic crystals are periodic dielectric structures that possess a wealth of physical characteristics. Owing to the unique way they interact with the light, they provide new degrees of freedom to precisely modulate the electromagnetic fields, and have received extensive research in both academia and industry. At the same time, fueled by the advances in computer science, inverse design strategies are gradually being used to efficiently produce on-demand devices in various domains. As a result, the interdisciplinary area combining photonic crystals and inverse design emerges and flourishes. Here, we review the recent progress for the application of inverse design in photonic crystals. We start with a brief introduction of the background, then mainly discuss the optimizations of various physical properties of photonic crystals, from eigenproperties to response-based properties, and end up with an outlook for the future directions. Throughout the paper, we emphasize some insightful works and their design algorithms, and aim to give a guidance for readers in this emerging field.

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